For the constant $k$, where $k > 1$, the functions $f$ and $g$ are defined by $f: x o ext{ln}(x + k), ext{ for } x > -k,$ g: x o |2x - k|, ext{ for } x ext{ in } ext{R} - Edexcel - A-Level Maths Pure - Question 1 - 2006 - Paper 4

The range of the function $f(x) = ext{ln}(x + k)$ is $(- ext{infinity}, + ext{infinity})$ since the natural logarithm function can take on all real values as $x$ goes from $-k$ to $+ ext{infinity}$.

First, find the value of g(rac{k}{4}):

gigg(rac{k}{4}igg) = |2 imes rac{k}{4} - k| = | rac{k}{2} - k| = | -rac{k}{2}| = rac{k}{2}.

Now, we find figg(gigg(rac{k}{4}igg)igg):

figg(rac{k}{2}igg) = ext{ln}igg(rac{k}{2} + kigg) = ext{ln}igg(rac{3k}{2}igg).

Thus, fgigg(rac{k}{4}igg) = ext{ln}igg(rac{3k}{2}igg).

To find the value of $k$, we equate the gradient of the tangent:

The slope of the line $9y = 2x + 1$ is rac{2}{9}. At $x = 3$, we find:

f'(x) = rac{1}{x + k}

Evaluating at $x = 3$, f'(3) = rac{1}{3 + k}.

Setting these equal gives:

Cross-multiplying yields:

$9 = 6 + 2k,$ $3 = 2k,$ k = rac{3}{2}.